SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4435-9
Organic room-temperature phosphorescent (RTP) materials exhibit large Stokes shifts, high signal-to-noise ratios, and long emission lifetimes, positioning them as promising candidates for advanced anti-counterfeiting, bioimaging, sensing, and display technologies. Despite significant progress in molecular design—including radical-based systems, crystal engineering, host-guest doping, polymer matrix confinement, and supramolecular assembly—the integration of these materials with 3D printing remains in its infancy. This review critically examines the design strategies and research advances in 3D-printed organic RTP materials, focusing on the fundamental photophysical processes of intersystem crossing and suppression of non-radiative transitions. We analyze how printing parameters, matrix rheology, and layer-by-layer deposition influence phosphorescence quantum yields and lifetimes. Key challenges such as oxygen quenching, thermal degradation during extrusion, and poor interlayer adhesion are discussed with quantitative benchmarks. The review highlights that current 3D-printed RTP systems achieve lifetimes up to 1.2 s and quantum yields of 12% under ambient conditions, but scalability beyond 100 cm² remains limited by nozzle clogging and slow curing kinetics. By mapping material formulation to printability, we identify operational windows for extrusion-based and vat photopolymerization techniques. This work provides a roadmap for engineers to transition RTP materials from laboratory-scale demonstrations to industrial fabrication of complex 3D architectures with persistent luminescence.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4477-7
The rapid demand for high-energy-density lithium batteries necessitates advanced solid-state electrolytes (SSEs) to overcome the safety and performance limitations of conventional liquid counterparts. Macrocyclic compounds, with their well-defined cavities, programmable binding sites, and tunable self-assembly, have emerged as powerful molecular regulators for designing next-generation SSEs. This review examines recent advancements in macrocyclic compound-based SSEs by categorizing their functions into four fundamental supramolecular regulation paradigms: cation-centered regulation (e.g., crown ethers), anion-centered regulation (e.g., calixarenes and calixpyrroles), channel-dominated transport (e.g., cyclodextrins), and hybrid regulation (e.g., cucurbiturils). We elucidate how these macrocycles precisely control ion coordination, modulate migration dynamics, and reshape interfacial chemistry, leading to enhanced ionic conductivity, improved Li+ transference numbers, suppressed lithium dendrite growth, and superior interfacial stability. While each paradigm offers distinct advantages, the most promising SSEs often leverage synergistic combinations of these strategies. Finally, we highlight the remaining challenges, including synthetic complexity and multi-objective performance trade-offs, and propose future research directions for developing highly efficient and durable macrocycle-based solid-state lithium batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4275-3
Electrochemical in-situ production of active chlorine (AC) via chlorine evolution reaction (CER) can alleviate hull corrosion and residual chlorine overage, which is a highly reliable disinfectant for sewage and ballast water. Nonetheless, the primarily competitive oxygen evolution reaction and gradual anode passivation hinder its practical application. Herein, we employed the in-situ hydrothermal strategy to synthesize Ru/TiO2-x to realize high activity and selectivity of CER. The robust interaction of Ru sites and TiO2-x achieved via a one-step hydrothermal synthesis strategy, the structural and valence state characterizations confirm that Ti3+ stabilizes Ru solely in the metallic state (Ru0) via structural confinement effects, effectively inhibiting catalyst oxidation. As a result, the Ru/TiO2-x requires only an overpotential of 33 mV to reach 10 mA cm−2, and possess strong catalytic durability, sustaining continuous operation for 100 h with negligible current decay. Further integration with a triboelectric nanogenerators successfully realizes the generation of AC, which demonstrates a >99.9% inactivation efficiency against Escherichia coli in simulated seawater environments, while also effectively degrading ammonia nitrogen and urea contaminants in domestic wastewater.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4290-9
Thermoelectric materials enable direct and reversible conversion between heat and electricity, offering unique advantages for waste heat recovery, solid-state refrigeration, and deep-space power systems. The performance is evaluated by the dimensionless figure of merit, zT = S²σT/κ, where S is the Seebeck coefficient, σ is the electrical conductivity, T is the absolute temperature, and κ is the total thermal conductivity. Achieving high zT requires simultaneous realization of a large power factor (S²σ) and low thermal conductivity. However, these parameters are intrinsically coupled, posing a fundamental challenge. PbTe is a representative thermoelectric material operating in the intermediate temperature range, with outstanding performance originating from its unique electronic band structure featuring multiple nearly degenerate valence band maxima near the L points. Band convergence via alloying with mono-tellurides such as MgTe, MnTe, CdTe, YbTe, SrTe, and EuTe effectively modifies the valence band structure, increasing band degeneracy and density-of-states effective mass, thereby enhancing electrical conductivity without decreasing the Seebeck coefficient. However, increasing the content of these mono-tellurides limits acceptor dopability, making conventional dopants like Na difficult to incorporate. This study demonstrates that co-doping strategies can preserve dopability while achieving band convergence and dislocation engineering, leading to significantly reduced lattice thermal conductivity and extraordinary peak zT values. The decoupling of electronic and thermal transport through this approach offers a promising route for high-performance thermoelectrics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4269-4
Self-assembled molecular interlayers (SAMs) are promising hole-selective contacts for high-efficiency organic solar cells (OSCs) due to their well-defined energy alignment and minimal parasitic absorption. However, their intrinsically limited mechanical robustness often leads to structural degradation and performance loss under mechanical deformation, restricting their application in flexible devices. Here, we report a nanoparticle-reinforced self-assembled composite interface that simultaneously enhances mechanical reliability and optoelectronic performance. Uniformly dispersed SiO2 nanoparticles are introduced as high-modulus reinforcing building blocks without disturbing molecular self-assembly. In contrast to NiOx nanoparticles, which suffer from aggregation and parasitic absorption, SiO2 nanoparticles exhibit excellent dispersion and optical transparency, enabling formation of a structurally compatible hybrid interface. Mechanistic studies reveal that SiO2 nanoparticles redistribute interfacial stress and form dynamic hydrogen-bond networks with phosphonic acid groups of 2PACz, providing efficient energy dissipation during cyclic deformation. Meanwhile, modulation of interfacial polarity extends the crystallization time window of the active layer, resulting in enhanced molecular ordering and improved charge transport. As a result, devices based on the SiO2/2PACz composite interface achieve a power conversion efficiency of 20.14% for rigid devices and 19.30% for flexible devices, placing the flexible devices among the highest-performing flexible OSCs reported to date, while retaining over 90% of their initial efficiency after repeated bending cycles. This work establishes a general strategy for overcoming the trade-off between electronic selectivity and mechanical robustness in ultrathin self-assembled molecular interfaces, providing design insights for high-performance flexible organic optoelectronics.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4323-8
Sulfur-based batteries are promising for next-generation energy storage due to high theoretical capacity, natural abundance, and low cost of sulfur cathodes. However, practical implementation is impeded by sluggish sulfur redox kinetics, dissolution and migration of intermediate polysulfides, and formation of insulating discharge products. Conventional catalyst design focuses on charge distribution, adsorption energetics, and structural confinement, yet these approaches incompletely describe the complex electronic processes governing sulfur conversion. Electron spin, an intrinsic quantum degree of freedom, offers an additional dimension for modulating catalytic behavior via its influence on electronic structure and orbital interactions at catalytic interfaces. In spin-polarized systems, changes in occupation and splitting of transition-metal d orbitals can regulate d-p hybridization with sulfur species, affecting interfacial charge transfer and energetics of sulfur redox reactions. This review summarizes recent progress in elucidating and manipulating electron spin in sulfur-based battery systems. Fundamental principles connecting spin states with electronic structure and catalytic behavior are outlined, followed by experimental approaches for probing spin-related electronic properties using spectroscopic and magnetic characterization techniques. Emerging strategies for spin regulation are highlighted, including heteroatom doping, defect engineering, coordination environment modulation, chirality-induced spin selectivity, and external magnetic-field control. Remaining challenges in identifying spin effects under realistic electrochemical conditions are addressed, along with opportunities for integrating spin-related descriptors into catalyst design. Establishing quantitative relationships between spin polarization, orbital hybridization, and sulfur reaction pathways may provide new perspectives for high-performance sulfur-based batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4250-0
Shape memory polymer (SMP)-based transfer printing offers a promising route for heterogeneous integration of flexible electronics, yet non-contact release reliability remains a critical bottleneck. This study systematically investigates the influence of pickup heating modes—localized versus global—on the release yield and energy-delivery mechanisms through combined experiments and finite element simulations. The localized heating mode concentrates strain energy at the interface, enabling controlled chip ejection with high yield, whereas global heating dissipates energy, leading to release failure. Quantitative analysis reveals that localized heating achieves a release yield of 100% under optimized conditions, compared to near-zero for global heating. The ejection velocity under localized heating is higher, which may induce chip bouncing on the receiver substrate, affecting transfer accuracy; however, this can be mitigated by adjusting release gap and laser parameters. The findings establish a theoretical framework for energy pathway design, providing guidelines for achieving high-yield, accurate non-contact release in laser-induced transfer printing. This work advances the practical application of SMP-based transfer printing for micro-LED displays and flexible electronics, addressing a key manufacturing bottleneck.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4344-5
Germanium-based materials (Ge-based) have been explored as anodes for potassium-ion batteries (PIBs) due to their high theoretical capacity (369 mAh g-1) and moderate potassium insertion potentials. However, their application is hindered by volume expansion and unstable solid electrolyte interphase films. This review systematically synthesizes recent advances in Ge-based materials (encompassing metallic Ge, oxides, chalcogenides, and alloys), with an emphasis on structure-performance relationships to elaborate synergistic optimization strategies. Key optimization strategies such as nanostructuring, composite design with conductive supports, interfacial engineering, doping, and electrolyte modification are elaborated. The potassium storage mechanisms of different materials are compared, and the effectiveness of various modification strategies is evaluated under different operating conditions. High-throughput computations are integrated with experimental validation to guide material and electrolyte design. A life cycle assessment perspective is also introduced to evaluate the sustainability and practical viability of Ge-based materials. Given the high cost and low abundance of Ge, these materials are more suitable for niche applications where high energy density is critical, rather than large-scale grid storage. The review underscores the necessity of balancing electrochemical performance with economic and environmental considerations, proposing a roadmap for future research that prioritizes cost-effective synthesis and scalable manufacturing.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4367-4
Single-crystalline Cs3Cu2I5 has attracted considerable interest owing to its excellent scintillation performance and favorable stability. Nevertheless, second phases induced by peritectic reactions during melt growth give rise to deteriorated scintillation properties and promote crystal cracking. In this work, the effects of non-stoichiometric ratios of raw material (n(CsI)=0.57, 0.62, and 0.63) on the crystallization behavior and scintillation properties were systematically investigated. The results show that the crystal quality is optimal at n(CsI)=0.62, featuring high transparency, absence of macroscopic inclusions, and cracking free, with a PLQY of 79.3%. Temperature-dependent photoluminescence verifies the self-trapped exciton emission mechanism with strong exciton-phonon coupling, giving an exciton binding energy of 473.9 meV and a Huang-Rhys factor S of 79.8. The as-grown crystal exhibits an optimized light yield of 24,380 photons/MeV, an energy resolution of 3.8% for 137Cs (662 keV) γ-rays, a dominant decay time of 957 ns, and excellent linear response in the medium-to-high energy region. Precise regulation of the raw material stoichiometry can effectively suppress the formation of second phases, yielding high-quality Cs3Cu2I5 single crystals whose comprehensive performance demonstrates promising application potential in γ-ray detection.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4203-7
The solution process holds great promise for organic light-emitting diode (OLED) fabrication owing to its minimal material loss, simple processing and low equipment investment. However, solution-processed blue OLEDs still face the challenges of low electroluminescence efficiency and poor working stability. In this study, two new cross-linkable blue light-emitting molecules, v-4CzBn and v-5CzBn, were synthesized. They featured a multicarbazole-substituted benzonitrile donor–acceptor structure as the emitting core, with two vinyl phenyl units on the carbazole rings serving as cross-linking groups. A singlet–triplet energy gap of ΔEST ≤ 0.10 eV and a high reverse intersystem crossing rate (kRISC > 10^6 s−1) were achieved because the three-dimensionally confined covalent network structure formed through a thermal cross-linking reaction limited intramolecular motions and vibrational relaxations of luminescent units. Moreover, this structure suppressed irreversible morphological changes and structural deterioration of light-emitting units due to aggregation or crystallization, improving the light-emitting performance of the device. Nondoped solution-processed OLEDs with the structure of ITO/PEDOT:PSS/TFB/S-4CzBn/TPBi/LiF/Al exhibited blue emission with a peak at 488 nm, achieving a maximum external quantum efficiency of 12.01%, a maximum luminance of 11,141.15 cd m−2, and a T50 lifetime of 1375.66 h@100 cd m−2. This result represents the longest operational lifetime reported to date for solution-process devices with cross-linked emitting layers.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3660-5
High-sensitivity piezoelectric ceramics with high piezoelectric constants (d33) are crucial for miniaturized, low-power, and high-efficiency transducers. However, conventional performance enhancement relies on intrinsic parameter modulation, which is limited and blind. This study introduces a performance-driven metamaterials creation model to develop structure-function-integrated piezoelectric materials. We systematically investigated the effects of metastructure design on d33 across two-dimensional straight rod (SR) structures, three-dimensional dot-matrix (Octa) structures, complex triply periodic minimal surface (TPMS) structures, and hybrid Octa&SR structures. The results demonstrate that metastructures combining high polarization charge conversion efficiency with low compression modulus (stiffness) effectively enhance d33. The SR structure exhibited optimal polarization charge conversion, the Fks-Shellular (FksS) structure within TPMS showed low stiffness, and the Octa&SR structure combined both properties. Notably, all three structures displayed exceptional piezoelectric performance. Specifically, the FksS structure achieved a substantial d33 of 194 pC/N, a 24% enhancement over conventional solid BaTiO3, while maintaining isotropic and stress-insensitive properties. This work elucidates the mechanism for designing piezoelectric metastructures, offering a novel pathway for developing high-performance, high-failure-strength piezoelectric materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3539-5
MXene-based layered films are promising for electromagnetic interference (EMI) shielding, yet achieving highly ordered structures in scalable production remains challenging. Here, we report a facile centrifugal casting method for fabricating MXene/polyvinyl alcohol (MXene/PVA) films with highly oriented and compact layered structures. During centrifugal casting, the viscous fluid experiences strong shear and centrifugal forces along tangential and normal directions, respectively, inducing compact and oriented arrangement of MXene nanosheets. Consequently, the Herman's orientation factor increases from 0.681 to 0.794 as rotation rate rises from 0 to 4000 r/min. Accordingly, tensile strength and toughness improve from 55.2 to 191.1 MPa and from ~0.8 to 2.5 MJ/m³, respectively. The highly oriented and compact layered structure with ultrathin thickness (~8 μm) enables a high absolute electromagnetic shielding effectiveness (SSE/t) of 21029 dB cm²/g. Moreover, increased orientation reduces infrared emissivity to 0.248, endowing the film with excellent thermal camouflage capability. This work presents an effective strategy for constructing high-performance MXene-based layered films.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3793-9
Organic solar cells (OSCs) require both a high donor/acceptor (D/A) interfacial area for efficient exciton dissociation and a vertically phase-separated morphology for efficient charge transport. Traditional bulk heterojunctions (BHJs) provide large interfacial areas but lack vertical phase separation, while quasi-planar heterojunctions (QPHJs) achieve vertical separation at the cost of reduced interfacial contact. Here, we introduce an in situ pore-forming strategy for polymer thin films. By incorporating an excess of additives as pore-forming agents into the donor layer, a nanoporous film with a fibrous nano-network is generated. Subsequent deposition of acceptor molecules fills these nanopores, creating a hybrid planar/bulk heterojunction (HP/BHJ) that synergizes the strengths of both architectures. This design enhances performance by: (1) increasing the D/A interfacial area via nanopores, forming a three-dimensional network that accelerates exciton dissociation; (2) promoting close molecular packing that minimizes carrier recombination and establishes low-defect charge transport channels; and (3) fostering vertical phase separation through layer-by-layer deposition. Binary OSCs fabricated with this strategy achieve a power conversion efficiency (PCE) of 20.0%, surpassing conventional BHJ and QPHJ devices by a significant margin. The approach demonstrates general applicability, with analogous improvements observed in D18/BTP-eC9-4F and PM6/L8-BO systems, underscoring its potential for advancing OSC performance.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3617-x
Macrophages are pivotal in infection resolution and tissue repair via dynamic M1-to-M2 phenotypic polarization. Although various nano-biomaterials can modulate macrophage polarization, achieving sequential M1-to-M2 transition using a single nanoformulation remains challenging. Here, we propose a strategy employing transition metal carbide/nitride (MXene) nanosheets, internalized by macrophages, as the sole regulator to induce sequential polarization. Under a rotating magnetic field, the high electrical conductivity and magnetoelectric activity of endocytosed MXene generate electrical signals and reactive oxygen species (ROS), driving M1 polarization. Upon magnetic field removal, the inherent bioactivity of MXene facilitates repolarization to the M2 phenotype. Mechanistically, this transition involves inhibition of the NF-κB signaling pathway and activation of the JAK-STAT signaling pathway. In vivo, MXene nanosheets under on-off rotating magnetic field stimulation enabled sequential M1-to-M2 polarization, promoting bacterial clearance and tissue regeneration in infected wounds. This two-step sequential strategy targeting macrophages offers a promising therapeutic approach for infected wound healing.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3647-4
Chromium oxides (CrOx) and fluorinated graphite (CFx) are two typical cathode materials for lithium primary batteries. The former possesses the highest theoretical energy density but suffers from low practical capacity and inferior rate capability; the latter has the highest theoretical discharge capacity but fails to support fast discharge. Combining the merits of both cathodes via a composite design is desirable, yet the electrochemical performance of such composites remains unsatisfactory. In this work, we identified that by regulating the overlapped discharge potential of these two cathodes, fluorine atoms migrate from CFx to CrOx, leading to a homogeneous distribution of LiF and improved ionic and electronic conductivity, ultimately enhancing high-rate discharge performance. Benefiting from this synergetic effect, the CrOx/10%eCFx composite exhibits a considerably high energy density of 496.59 Wh kg−1 at a power density of 49.7 kW kg−1 (50 C), far superior to pure CrOx and CFx electrodes. We believe that the high-performance CrOx/eCFx composite cathode will justify its practical application in revitalizing advanced lithium primary batteries.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3714-3
Eco-friendly aqueous zinc batteries (AZBs) are promising alternatives to lead-acid batteries in applications requiring both safety and energy density. However, their practical deployment is hindered by the synergistic deterioration of zinc anodes—structural collapse and kinetic failure—under high depth of discharge (DOD) and high current densities, which severely limits actual energy and power densities. Here, we report a strategy for the in situ integration of a double-layer topological chitosan framework (D-CTS) on current collectors via regulating phase separation kinetics during multistage coordination-neutralization electrophoresis. The vertical through-hole array is formed by coupling instantaneous and delayed phase separation. Subsequently, a columnar zinc array is mediated by D-CTS to construct an integrated component (D-CTS-Zn) comprising a vertical through-hole separator and an array anode. The embedded interconnected nanonetworks within the through-hole walls enable dynamic equilibrium of the columnar zinc array through a lateral ion compensation mechanism. As a result, Zn||Zn symmetric cells with D-CTS-Zn stably cycle over 3000 cycles at 200 mA cm−2 under 60% DOD. The assembled D-CTS-Zn||MnO2 battery delivers an energy density of 83 Wh kg−1 at an ultrahigh power density of 9.25 kW kg−1. This work provides a constructive strategy for chitosan phase separation regulation and separator-induced reversible metal array anodes.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3699-1
Dual-atom (DA) catalysts have exhibited great potential in regulating the catalytic performance of CO2 reduction. However, precise construction of DAs on a support remains challenging. Herein, we report the precise immobilization of M-DAs (M = Ru, Rh, Pt) onto the Zr-oxo cluster of a 2D porphyrinic metal-organic framework (2D-Ni-PCN-222) via a dimetallic complex pre-coordination strategy. The resultant M-DAs/2D-Ni-PCN-222 catalysts were applied to CO2 photoreduction using ammonia borane as the H* donor. Under visible light, the optimal catalyst, Ru-DAs/2D-Ni-PCN-222, exhibited a HCOO− production rate of 35.4 mmol g−1 h−1 with nearly 100% selectivity and a turnover frequency of 691 h−1. Kinetic isotope experiments demonstrated that the coupling rate between H* and CO2 governed the production efficiency of HCOO−. In situ experiments and density functional theory calculations disclosed that Ru-DAs with highly delocalized d electrons could accept photogenerated electrons from 2D-Ni-PCN-222 and inject them into inert CO2 molecules. Ab initio molecular dynamics simulations revealed that adaptive shortening of Ru–O coordination bonds during CO2 adsorption played a crucial role in facilitating deeper activation and the formation of an optimal η3–O,C,O adsorption mode of CO2. This work provides a precise strategy for constructing dual-atom catalysts on MOFs and elucidates the mechanism of CO2 photoreduction, offering insights for the design of efficient photocatalysts.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3686-6
Fused silica (SiO2) exhibits exceptional thermal stability and dielectric properties, making it an attractive material for aerospace and military applications. However, its relatively poor mechanical performance has limited its widespread practical utilization. This study proposed an innovative approach to fabricate SiO2-hexagonal boron nitride (hBN) composite ceramics via spark plasma sintering (SPS), leveraging the high-temperature phase transformation of cubic boron nitride (cBN) to introduce randomly oriented hBN as a reinforcing phase within the SiO2 matrix. The randomly oriented hBN nanoplates allow cracks to propagate along stronger grain boundaries, rather than along weaker interlayers of hBN, significantly improving the overall strength and fracture toughness of the composite. The maximum flexural strength and fracture toughness achieved are 183.4 MPa and 2.06 MPa m1/2 respectively, which are 3.6 times and 4 times that of fused SiO2. Concurrently, the composites exhibit low dielectric constants (ε = 3.58–3.69) and dielectric losses (tan δ < 0.0087) at 1 MHz. This work successfully enhanced the mechanical performance of fused SiO2 while preserving its excellent dielectric characteristics, opening new possibilities for its potential applications in advanced structural and functional fields.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3654-5
Hydrogen production by photosynthetic green algae is an efficient biological process that utilizes light energy to convert water and carbon dioxide into clean and renewable energy. In this paper, we constructed a hybrid system combining graphitic carbon nitride (g-C3N4) and Chlorella pyrenoidosa (Chlorella), in which g-C3N4 serves as an extracellular electron source and Chlorella acts as a biological reactor for specific hydrogen production. In particular, the electronic structure of carbon nitride was optimized by means of hydrothermal alkalization and copper ion doping, expanded the light absorption range and enhanced the light response ability. g-C3N4, as an extracellular electron source, can provide electrons for Chlorella to improve hydrogen production performance which is 3.7 times that of bare Chlorella. The construction of a biological hybrid system is a feasible optimization strategy for the hybrid system to promote the synergistic effect of the hybrid system by regulating the properties of non-living components.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61068-2
The poor interface contact between bismuth (Bi) nanoparticles and reduced graphene oxide (rGO) impedes ion/electron transfer in lithium-ion battery anodes. We report an innovative fabrication of ultrafine Bi nanocrystals chemically bonded to rGO (Bi-rGO) via liquid-phase pulsed laser irradiation followed by solvothermal reaction with graphene oxide. Metastable Bi nanocrystals synthesized by laser (5.5 nm) undergo lattice restructuring and shrink to a record-small size of 2 nm during solvothermal combination, the smallest reported for Bi/C composites. The Bi nanocrystals are uniformly anchored onto rGO nanosheets via strong Bi–O–C bonds, which suppress particle aggregation, establish efficient ion/electron transport channels, and alleviate volume expansion during lithiation. The Bi-rGO-2 anode, comprising 2 nm Bi nanocrystals, delivers an exceptional reversible capacity of 586.7 mAh g−1 over 500 cycles at 100 mA g−1, nearly doubling that of a Bulk Bi/rGO composite anode (318 mAh g−1). Theoretical calculations confirm higher binding energy between Bi and rGO at smaller particle sizes, while kinetic analysis reveals accelerated Li+ diffusion. This work provides a scalable route to high-performance alloy anodes through metastable nanocrystal engineering and covalent interface coupling.
New Carbon Materials•2026•DOI: 10.1016/S1872-5805(26)61066-9
Carbon materials suffer from limited dielectric loss, resulting in poor impedance matching and inadequate microwave attenuation. To address this, hierarchical structures with synergistic loss mechanisms are sought. Here, biomass cattail serves as a sustainable precursor for nitrogen-doped carbon nanotube arrays decorated with Fe3C nanoparticles via chemical vapor deposition, yielding Fe3C@NCNTs/CMTs composites. The crystallinity, tuned by calcination temperature, critically influences microwave absorption. At 800 °C, the composite achieves a minimum reflection loss of –35.8 dB and an effective absorption bandwidth of 7.02 GHz at a thickness of only 1.7 mm, with an ultralow filler loading of 10 wt%, covering the entire Ku band and part of the X band. This performance stems from enhanced magnetic loss and multiple dielectric polarization mechanisms. The study demonstrates a promising strategy for designing biomass-derived carbon-based broadband microwave absorbers.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3757-2
β-Ga2O3 is a promising candidate for solar-blind ultraviolet photodetection owing to its suitable bandgap of approximately 4.9 eV, excellent photoresponse characteristics, and high stability. However, the lack of a sufficient driving force within the material leads to extensive bulk charge recombination, limiting its photocurrent and thus posing significant challenges in designing high-performance Ga2O3-based photodetection. In this study, we propose a gradient doping strategy to achieve a Sn-doping concentration gradient along the β-Ga2O3 film thickness. By combining sol–gel synthesis with rapid thermal annealing, a spatially graded band structure with a full-space built-in electric field is constructed, which increases the width of band bending over a large region and is crucial for significantly enhancing carrier separation and transport in the bulk. The resulting gradient Sn-doped β-Ga2O3 enables exceptional photoelectric performance without an external bias under 254 nm irradiation, including a superior responsivity of 66.88 mA W−1, a high detectivity of 8.12 × 10^11 Jones, and a fast rise/decay time of 79/65 ms, outstanding most existing similar reported photoelectrochemical (PEC) type optoelectronic devices. Additionally, the device exhibits excellent long-term stability and enables high-resolution underwater ultraviolet imaging. This study demonstrates that the gradient doping strategy provides a feasible approach for enhancing the PEC performance of β-Ga2O3 photoelectrodes.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3689-9
Converting body heat into electricity presents an appealing route for sustainably powering wearable electronics; however, conventional thermoelectric materials face significant drawbacks, including high ionic concentrations, toxicity, and limited thermoelectric efficiency. Here, we report an ionic thermoelectric hydrogel designed through precise supramolecular chemistry, utilizing dual molecular interactions: host-guest complexation of α-cyclodextrin (α-CD) with I3− ions and hydrogen bonding between polyvinyl alcohol (PVA) polymer chains and I3−. This molecularly tailored approach markedly amplifies thermoelectric performance, achieving a high thermopower of 2.21 mV/K and a tenfold enhancement in peak power output at an exceptionally low iodine concentration (10 mmol/L I− + 2.5 mmol/L I3−). The hydrogel maintains excellent biocompatibility and mechanical robustness, suitable for direct skin contact. Demonstrated applications include flexible thermoelectric devices generating nearly 100 mV from body heat and sensor arrays capable of motion and spatial temperature sensing. These results underscore the substantial potential of supramolecularly designed ionic thermoelectric hydrogels for wearable energy harvesting, personalized healthcare monitoring, and advanced human-computer interfaces.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202507059
Anaerobic digestion sludge (ADS) contains recalcitrant organic matter and exhibits poor dewaterability, posing challenges for disposal. This study evaluated the immobilization of white rot fungi (WRF) on four carriers—polyvinyl alcohol, cotton thread, wood chips, and sodium alginate—for ADS treatment. Cotton thread immobilization yielded the earliest and most sustained enzyme activity, highest biomass retention, and minimal biomass loss. WRF treatment achieved a 10.09% removal of total chemical oxygen demand (TCOD) and significantly disrupted extracellular polymeric substances (EPS), selectively degrading soluble EPS. To maintain fungal activity, periodic carrier replacement was required. Compared to the control, the experimental group showed an 8.9 mg·L−1 reduction in total protein and polysaccharide content in soluble EPS, a 27.33% decrease in capillary suction time (CST), and improved sludge dewaterability. These results demonstrate the potential of WRF for ADS treatment.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202506020
The rotary kiln roasting of lepidolite for lithium extraction faces challenges of unstable lithium conversion rates and high energy consumption. To address this, a multi-objective optimization method coupling improved neural network simulation with a multi-objective genetic algorithm was proposed, targeting the synergistic optimization of lithium conversion rate (TRLi) and natural gas consumption intensity (EIng). Using long-term industrial time-series data of batching parameters and kiln operating variables, back-propagation (BP) neural network and its particle swarm optimization (PSO) improved variant were developed to model TRLi and EIng. The PSO-BP model demonstrated superior accuracy in capturing the complex nonlinear relationships, reducing mean absolute percentage errors (MAPE) to 0.278 and 0.284 for TRLi and EIng, respectively. Subsequently, the non-dominated sorting genetic algorithm II (NSGA-II) was employed to construct a multi-objective optimization model, yielding a Pareto-optimal set of process parameters that maximize TRLi and minimize EIng. The results revealed that under NSGA-II optimized conditions, TRLi could be stabilized between 82.45% and 87.96%, an average increase of 3.61 percentage points over baseline operations, while EIng could be reduced to 53.7 m3 per ton of clinker. For an annual processing capacity of 3.2×105 tons of lepidolite concentrate and sulfate mixture, this corresponds to an additional 127.1 tons of lithium metal recovery, a reduction of 1,964,912 m3 in natural gas consumption, and a decrease of 3,763.84 tons in CO2 emissions annually. This study provides theoretical and technical support for the green, high-quality, and low-carbon supply of critical raw materials for the lithium battery new energy industry.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.3724/2097-213X.2025.JFCT.0027
Electrocatalytic CO2 reduction reaction (CO2RR) offers a promising route to mitigate CO2 emissions while producing valuable chemicals. This study reports a Cu-Sn alloy catalyst with a wheat-ear-like dendritic structure, fabricated via a one-step electrodeposition method, for selective CO2 electroreduction to formate. Compared to pure Cu and Sn electrodes, the Cu-Sn alloy exhibits superior catalytic activity and selectivity toward formate, achieving a maximum Faradaic efficiency (FE) of 80% and maintaining above 70% FE over a potential window from -1.7 V to -2.0 V (vs. Ag/AgCl). The enhanced performance is attributed to the unique dendritic morphology that provides abundant active sites and the synergistic alloying effect that modulates the adsorption of the CO2*- intermediate, as corroborated by electrochemical measurements and X-ray photoelectron spectroscopy (XPS). This work presents a facile strategy for designing bimetallic catalysts for efficient CO2RR to formate.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2024110202
Anaerobic digestion (AD) is an environmentally friendly biochemical technology for waste treatment and renewable energy production, yet its methane conversion efficiency remains suboptimal. This study employed flux balance analysis (FBA) to determine the optimal temperature for methane production in AD, and subsequently regulated key flexible nodes in the metabolic pathway to maximize methane flux. At the optimal temperature of 40 °C, up-regulating the acetyl-CoA flexible node increased methane flux by 48.5%, while up-regulating the acetate node increased it by 36.6%. The higher improvement via acetyl-CoA regulation is attributed to the fact that 40 °C is unfavorable for hydrogen-producing acetogenic bacteria, making acetyl-CoA the critical control point. These findings demonstrate that flexible node regulation can overcome the limitations of temperature optimization alone. The FBA methodology provides a reliable, cost-effective approach for optimizing target product yields in AD and other fermentation systems, requiring only input and output measurements to resolve intermediate metabolic fluxes.
The Chinese Journal of Process Engineering•2026•DOI: 10.12034/j.issn.1009-606X.225185
Sulfur hexafluoride (SF6), widely used as an insulating gas in high-voltage electrical equipment, possesses a global warming potential (GWP) 25,200 times that of CO2, necessitating efficient degradation technologies. This study employed computational fluid dynamics (CFD) to simulate the thermal catalytic degradation of SF6 in a fixed-bed reactor, integrating models for porous media, heat transfer, turbulence, and chemical kinetics. The simulations revealed significant radial non-uniformities in pressure, velocity, temperature, and species concentration distributions, with temperature identified as the dominant factor influencing degradation efficiency. Radial temperature gradients caused uneven reaction rates, with degradation rates near the wall substantially exceeding those at the central axis, thereby reducing overall SF6 conversion. To address this, structural optimizations were implemented, including reducing the reactor tube diameter and incorporating inert porous media with high thermal conductivity at both ends of the catalytic section. These modifications enhanced radial heat transfer, homogenized the temperature field, and improved the uniformity of reaction rates and species concentrations. Parametric studies on inlet gas velocity showed that both excessively low and high flow rates were detrimental: low velocities led to underutilization of the downstream catalyst and increased energy consumption, while high velocities deteriorated heat transfer and exacerbated radial temperature gradients. The optimal inlet velocity range was determined to be 0.4–0.8 m/s for a reactor tube inner diameter of 10 mm, balancing catalyst utilization, energy consumption, and degradation efficiency. This research provides data-driven guidance for the design and scale-up of SF6 catalytic degradation reactors.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4002-8
Neuromorphic electronic systems, inspired by the brain's parallel and distributed information processing, have emerged as a promising alternative to von Neumann architectures, which suffer from the memory wall and limited energy efficiency. However, seamless integration with biological tissue, particularly human skin, necessitates mechanical flexibility and conformability. Flexible neuromorphic electronics, combining neuromorphic computing with flexible substrates, enable brain-inspired processing with high efficiency and ultralow power consumption, targeting smart wearables, digital health, and brain-computer interfaces. Despite rapid advances in flexible synaptic devices, a cross-disciplinary synthesis connecting materials, device physics, circuit integration, and applications is lacking. This review systematically follows a device-to-system framework, first summarizing recent progress in flexible artificial synapses that emulate neural functions, then discussing neuromorphic circuits and systems, focusing on collaborative sensing-computing and heterogeneous integration strategies toward integrated sensing-memory-computing systems. Emerging applications in next-generation bio-intelligent systems, including wearables, health monitoring, and human-machine interaction, are highlighted. Key challenges and future directions are summarized to guide development of efficient, intelligent, and biocompatible bionic hardware. The review underscores the need for standardized metrics and scalable manufacturing to translate laboratory prototypes into practical flexible neuromorphic systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3930-3
Methylammonium lead tribromide (MAPbBr3) single crystals (SCs) are promising for room-temperature gamma-ray and X-ray detection, but scaling their size often compromises crystal quality. Here, we report a strategic precursor stoichiometry engineering approach to grow inch-sized, high-quality MAPbBr3 SCs via a constant-temperature evaporation method. We show that constructing a robust electrical double layer through organic cation modulation effectively stabilizes the colloidal precursor. This is achieved by synergistically suppressing MA+ deprotonation while promoting MA+ adsorption as counterions on the [PbBrn]2−n complexes, which collectively strengthens interparticle repulsion and raises the nucleation barrier. This multifaceted approach yields MAPbBr3 SCs with lateral dimensions up to 2 inches and an exceptional X-ray diffraction rocking curve full width at half maximum (FWHM) of 0.0093° at the (002) face. Consequently, the SCs enable spectroscopic-grade gamma-ray detection, achieving energy resolutions (ER) of 8.4% for the 57Co source (122 keV) and 11.1% for the 137Cs source (662 keV), along with a high X-ray sensitivity of 1.65 × 10^4 μC Gy−1 cm−2. This work paves the way for the practical application of MAPbBr3 SCs in high-performance gamma-ray and X-ray detection.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3745-1
Short-wavelength infrared (SWIR) organic photodetectors (OPDs) have attracted considerable attention due to their potential to overcome the limitations of inorganic counterparts. However, developing organic semiconductors with strong SWIR detection remains a significant challenge. Herein, we design and synthesize a new conjugated pyrrolic polysquaraine (PSQ-COT) by integrating a pyrrolic squaraine unit with a strong electron-donating moiety, achieving an absorption onset extending to 1.2 μm. To evaluate its detection performance, we fabricated two types of PSQ-COT-based SWIR OPDs with PC61BM and BTP-eC9 as the electron acceptors, respectively. The resulting PSQ-COT:PC61BM OPD exhibited superior detection performance compared with the BTP-eC9 counterpart, achieving an impressive specific detectivity of 1.08 × 10^12 Jones at 1030 nm under zero bias. This enhanced performance is due to the lower degree of energetic disorder and reduced trap density in the PSQ-COT:PC61BM device. Furthermore, we successfully integrated the PSQ-COT:PC61BM OPD into a high-pixel-density image array (640 × 512 pixels), enabling clear matter identification under SWIR light irradiation. This work provides valuable insights into designing high-performance organic semiconductors for SWIR light detection and imaging applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3545-7
Magnetically driven hydrogel robots show promise in biomedical and underwater applications due to remote controllability, flexibility, biocompatibility, and chemical stability. However, limited functional integration restricts their adaptability. Here, a universal modular assembly strategy is introduced using a self-healing κ-carrageenan/polyacrylamide hydrogel embedded with magnetic particles, enabling free assembly of magnetic actuation modules. These modules construct soft robots with complex geometries and magnetization distributions, allowing diverse deformations under magnetic fields. The strategy further integrates photocatalysis by embedding Ru-Bi2CrO6 photocatalysts into functional modules, yielding an oxygen-generating robot. This robot exhibits flexible underwater movement via magnetically controlled oscillatory actuation, minimizing water agitation while supplying stable oxygen to specific aquatic environments. The photocatalytic oxygen evolution rate reaches 389.1 μmol g−1 h−1. The hydrogel skeleton suppresses particle aggregation and sedimentation, and facilitates magnetic recovery. This scalable and adaptable approach advances multifunctional soft robot design.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202506084
Groundwater is a vital drinking and irrigation source in the loess regions of northwestern China. In Guyuan, a densely populated area in southern Ningxia, systematic assessments of groundwater pollution risks are lacking. This study collected 60 groundwater samples and employed the Nemerow index, heavy metal pollution index (HPI), and health risk assessment models to evaluate pollution levels and health risks of eight elements including Cr, As, and Hg. Results show that the groundwater is generally Class IV quality, with a mean TDS of 1350.9 mg·L−1. Average concentrations of As, Cr, and Mn are 4.39, 29.87, and 45.77 μg·L−1, respectively. The Nemerow index indicates moderate pollution. The mean HPI is 10.56, but a local sample (PS1-51-下) reaches 36.15, indicating severe pollution. Health risk assessment reveals that carcinogenic risks from Cr and As for adults and children are 8.037×10−6 a−1 and 3.863×10−6 a−1, respectively, below US EPA limits but above recommended levels by Swedish and Dutch agencies, with children at higher risk. Hydrogen and oxygen isotopes and principal component analysis suggest that groundwater is primarily recharged by atmospheric precipitation. Cr, Zn, and Mn mainly originate from regional copper ore belts, coal mining, and agricultural activities. This study fills a gap in multidimensional groundwater assessment in populated loess areas, identifies pollution characteristics distinct from typical loess regions, and provides a scientific basis for regional water resource risk management and sustainable development.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60631-1
Methane dehydroaromatization (MDA) offers a carbon-neutral route to benzene, toluene, and xylene (BTX), yet the regulatory mechanisms of Brønsted acid site (BAS) strength and spatial proximity to Mo sites remain unresolved. This study systematically tunes BAS strength via isomorphous substitution (Al, Ga, Fe, B) and Mo-BAS proximity in ZSM-5, integrating catalytic evaluations with density functional theory (DFT). Strongly acidic Al-zeolites achieve the highest methane conversion, while weakly acidic B-substituted systems exhibit optimal mono-/bifunctional synergy, outperforming moderate-acid counterparts. DFT reveals that deprotonation energy (DPE) correlates with acid strength; Al-ZSM-5 (DPE = -5.68 eV) lowers the C–H activation barrier (ΔG = 1.467 eV). Spatial proximity analysis shows that nanoscale Mo-BAS distances, achieved via ball milling, enhance methane conversion by 33% and BTX yield by 31% compared to micrometer-scale mixtures, by accelerating intermediate transport and suppressing coke. These findings establish a multi-scale framework linking acid strength, spatial confinement, and electronic modulation, providing actionable guidelines for designing next-generation MDA catalysts.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60640-8
Ethylene (C2H4) in vehicle exhaust is a highly reactive volatile organic compound (VOC) whose photo-oxidation with NOx contributes to the formation of O3 and secondary organic aerosols (SOA), a key precursor of PM2.5. This study designs a novel MgO-supported Ag-Cu bimetallic catalyst and investigates its performance using density functional theory (DFT). The effects of Ag and Cu loading on geometric structure, stability, and reactant adsorption are analyzed, and the catalytic oxidation pathways of C2H4 over AgCu-MgO are elucidated. Results indicate that loading Ag significantly enhances C2H4 adsorption, with a maximum adsorption energy of -1.46 eV, while O2 adsorption remains weak (-0.45 eV). Cu-MgO shows moderate C2H4 adsorption (-0.87 eV at bridge site) but higher O2 adsorption (-0.76 eV). Among 17 AgCu-MgO dual-atom catalyst (DAC) configurations, those with Ag and Cu co-adsorbed at Mg sites are thermodynamically more stable (binding energies below -10 eV). Configurations with Ag and Cu in close proximity enhance co-adsorption of C2H4 and O2. C2H4 oxidation preferentially proceeds via C=C bond cleavage to form *CH3 and CO2. For three representative configurations (1, 3, 6), free energy barriers for rate-limiting steps in the *HCO and CH2O pathway are consistently higher than those for *CH3 and CO2 pathway. Configuration 6 exhibits the lowest energy barrier (0.32 eV) for its rate-limiting step, indicating the highest catalytic performance. This study provides atomic-scale insights for rational design of efficient catalysts targeting olefinic pollutants in automotive emissions.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025092802
Activated carbon (AC) filters in drinking water treatment plants (DWTPs) experience significant adsorption performance decline over extended operation, yet complete media replacement is a major cost. To evaluate cost-effective strategies, pilot-scale column experiments with five AC replacement ratios (0%, 30%, 50%, 70%, and 100%) were conducted to assess removal of disinfection by-product (DBP) precursors and pesticide-related emerging contaminants. For dissolved organic matter (DOM), all fractions except low molecular weight compounds (LMWC) achieved >85% of the removal obtained with full replacement when 70% new AC was used, with UV254 removal reaching 70%. LMWC, due to small molecular size and low adsorption energy, required higher replacement ratios or full replacement for substantial removal. For DBPs, removal of trihalomethanes (THMs) and haloacetic acids (HAAs) was insensitive to replacement ratio, while haloacetaldehydes (HALs) removal improved markedly with increasing ratio, indicating structural selectivity. For pesticide-related contaminants, all except triazoles achieved >95% removal at 70% replacement; triazoles, due to high water solubility, high polarity, and low octanol-water partition coefficient, achieved only ~60% removal. Overall, replacing 70% of AC restored treatment performance to >80% of that with full replacement, ensuring effluent quality while saving ~30% of new carbon cost. Molecular structure, polarity, and pore size matching are key determinants of removal efficiency; optimizing replacement ratio balances water quality and economic benefits.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025011804
Per- and polyfluoroalkyl carboxylic acids (PFCAs) are persistent organic pollutants whose isomers exhibit distinct environmental behaviors, bioaccumulation potentials, and toxic effects due to structural variations. Accurate identification of PFCA isomers is critical for risk assessment and pollution control, yet existing detection methods predominantly rely on standard references, posing challenges for precise analysis of isomers with subtle structural differences. Single-molecule electrochemical sensing via nanopores offers a standard-free approach by correlating molecular volume with current blockade, but its capability to distinguish PFCA isomers remained unverified. This study targeted three sets of PFCA isomers: 4,5,5-trifluoropent-4-enoic acid vs. 4,4,4-trifluoro-3-methylbut-2-enoic acid; 3,3,3-trifluoro-2-methylpropanoic acid vs. 4,4,4-trifluorobutanoic acid; and 2-(trifluoromethoxy)acetic acid, 3,3,3-trifluorolactic acid, and (2R)-3,3,3-trifluoro-2-hydroxypropanoic acid. By engineering nanopore interfaces (WT, R220N, R220Q Aerolysin) and extracting multi-dimensional characteristic parameters, the method achieved near 100% accuracy in identifying all seven isomers. Feature selection further enabled high classification accuracy with low data volumes, laying the foundation for rapid single-molecule detection of PFAS and other emerging contaminants.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202605006
Military ecological and environmental protection is a critical component of national ecological and environmental protection. Military activities and operations, such as training and drills, weapons and equipment testing, and combat, are prone to triggering a series of ecological and environmental problems, including greenhouse gas emissions, deterioration of water resources and water quality, vegetation destruction, land degradation, and typical physical and chemical pollution, which have attracted extensive global attention. This study systematically analyzed the eco-environmental impacts of military activities on multiple environmental media (atmosphere, water, and soil) across different periods, and conducted pollution source tracing in multi-media and representative regions. It reviewed the current status of ecological and environmental protection technologies for the three major environmental media, i.e., atmosphere, water, and soil, and summarized the characteristics and constraints of military ecological and environmental research. Finally, it proposed the research trends and key development directions for military ecological and environmental protection from four dimensions: data monitoring and sharing, research and development of in-situ remediation technologies for military-civilian integrated combined pollution, green construction practices for military facilities, and optimization of management systems.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3827-3
Chiral functional materials, characterized by intrinsic spatial asymmetry, hold transformative potential in photonics, enantioselective synthesis, quantum technologies, and biomedicine. However, their rational design and discovery are impeded by the vast chemical space and complex structure-property relationships, rendering traditional trial-and-error approaches inefficient and costly. This review critically examines the paradigm-shifting role of artificial intelligence (AI) in accelerating the discovery and optimization of chiral functional materials. We highlight recent AI-driven breakthroughs, emphasizing machine learning (ML) algorithms that excel in identifying patterns within high-dimensional data, thereby enabling rapid virtual screening and elucidation of intricate structure-property correlations. Key applications span from predicting enantioselectivity in asymmetric catalysis to designing circularly polarized luminescent materials and chiral metamaterials. Notably, ML models have achieved predictive accuracies exceeding 90% in classifying chiral structures and have reduced computational screening times by orders of magnitude. The integration of AI with automated synthesis platforms further enables closed-loop optimization, as demonstrated in the autonomous discovery of optically active chiral perovskite nanocrystals. This review underscores that AI not only accelerates materials discovery but also fosters cross-disciplinary innovation, positioning itself as an indispensable tool for the next generation of chiral functional materials. By synthesizing recent progress, we provide a roadmap for leveraging AI to navigate the complex landscape of chiral materials, ultimately expediting the translation of laboratory innovations into practical applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3818-4
The electrocatalytic reduction of carbon dioxide (CO2RR) to multi-carbon (C2+) products is of significant interest due to its implications for chemical manufacturing and carbon neutrality. However, the competitive hydrogen evolution reaction (HER) and sluggish C–C coupling kinetics impede selectivity at industrial current densities. Here, we report an interfacial nanoconfinement strategy using N-(2-acetamido)iminodiacetic acid (ADA) to engineer a series of capping layer-covered Cu catalysts (Cu@ADA-x). A volcano-type correlation between capping layer thickness and C2+ selectivity is observed. The optimized Cu@ADA-m catalyst achieves a maximum Faradaic efficiency for C2+ products (FE C2+) of 86.8% and maintains over 80% of its initial FE C2+ after 42 hours at 200 mA cm−2, with an energy efficiency of 38.5%. In-situ Raman spectroscopy and density functional theory (DFT) calculations reveal that the capping architecture stabilizes metastable Cu species and optimizes gas adsorption, enhancing *CO intermediate utilization and lowering C–C coupling energy barriers. This work provides a catalyst design principle for industrial-scale carbon-neutral electrochemical production of multi-carbon products.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(25)60626-8
The dense crystalline structure and limited accessibility of cellulose severely hinder its efficient catalytic conversion. In response, biomimetic solid acid catalysts inspired by cellulase binding domains (CBDs) have emerged as a promising strategy to enhance cellulose hydrolysis by mimicking the substrate recognition and enrichment functions of natural enzymes. This review systematically summarizes recent advances in the design of CBD-mimetic solid acids based on four representative strategies: electrostatic anchoring, hydrophobic microenvironment engineering, spatial confinement, and covalent lock-and-key mechanisms. The underlying principles of these approaches, including substrate-specific recognition, local concentration enhancement, and synergistic “adsorption-catalysis” effects, are critically discussed to elucidate their contributions in improving catalytic affinity, selectivity, and durability. Despite significant progress, challenges such as mass-transfer resistance and insufficient structural robustness remain in complex biomass conversion systems. Looking forward, the integration of sub-enzymatic materials, such as carbon quantum dots (CQDs), into biomimetic catalysts offers new opportunities to achieve efficient, recyclable, and hierarchically organized catalytic systems, thereby providing a powerful route for the sustainable valorization of cellulose and other lignocellulosic resources.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202606011
Hexavalent chromium (Cr(VI)) contamination in chromite ore processing residue (COPR) and associated soils poses a persistent environmental challenge. This study developed a dispersedly stabilized iron-sulfur-based slurry (DSS-ISB) modified with an inorganic dispersant to enhance nanoparticle suspension stability and interfacial reactivity. The slurry, with a particle size of approximately 200 nm, efficiently reduced and immobilized Cr(VI) without pH adjustment. Under optimal conditions (liquid-to-solid ratio of 5 mL:10 g, DSS-ISB dosage of 1.8 mg/g, reaction time of 20 h), the removal efficiency exceeded 97%, reducing the leaching concentration from 15.03 mg/L to 0.03 mg/L, well below the GB 5085.3—2007 limit of 5 mg/L. X-ray photoelectron spectroscopy (XPS) and Brunauer-Emmett-Teller (BET) analyses revealed a synergistic mechanism of chemical reduction (Fe2+/S2- as dual electron donors) and surface adsorption, converting toxic Cr(VI) to stable Cr(III). Compared with traditional reductants ferrous sulfate (FeSO4) and sodium sulfide (Na2S), DSS-ISB increased removal efficiency by 28.24% and 6.23%, respectively, and unit mass removal capacity by 92.43% and 77.08%. The reagent cost per ton of COPR was reduced to RMB 36.40, achieving savings of 33.82% and 26.02% versus FeSO4 (RMB 55.00) and Na2S (RMB 49.20). The process eliminates pH adjustment and subsequent passivation, simplifying remediation. DSS-ISB offers an economical and green solution for Cr(VI) remediation in both industrial residues and contaminated soils.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3898-7
Platinum (Pt) is the benchmark catalyst for the hydrogen evolution reaction (HER) and hydrogen oxidation reaction (HOR) in acidic electrolytes, but its performance in alkaline media is limited by excessively strong hydrogen binding energy (HBE). Here, we report oxygen-modified ultrasmall RuCu nanocrystals (RuCu/C-200) as an efficient catalyst for both alkaline HER and HOR. The RuCu/C-200 catalyst exhibits excellent HER activity with an overpotential of 9 mV at 10 mA cm−2 and a Tafel slope of 19.7 mV dec−1. For HOR, it achieves a 4.2-fold higher exchange current density than the unannealed sample. Mechanistic studies reveal that the optimized HBE, hydroxyl binding energy (OHBE), and strongly hydrogen-bonded interfacial water, induced by oxygen modification, are the intrinsic determinants of the improved catalytic activity. This work underscores the potential of combining nanoscale structural design with oxygen modification to develop high-performance Ru-based electrocatalysts for both alkaline HER and HOR.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3823-4
The global demand for chlorine gas continues to rise, driven by its indispensable role in chemical synthesis, disinfection, and wastewater treatment. Electrocatalytic chlorine evolution from seawater presents a promising alternative to the energy-intensive chlor-alkali process, yet it is hampered by the competing oxygen evolution reaction and the sluggish kinetics of chlorine evolution on conventional catalysts. Here, we report a novel hollow porous CoNiSe2/NiSe2 heterostructure nanosheet array synthesized via ion exchange and calcination, which exhibits exceptional catalytic activity and selectivity for the chlorine evolution reaction in acidic seawater-like electrolytes. The unique hollow porous morphology provides a high specific surface area, facilitating mass transport and exposing abundant active sites. Crucially, the heterointerface between CoNiSe2 and NiSe2 promotes d-p orbital hybridization between Co/Ni 3d and Se 4p states, which lowers the reaction energy barrier for chlorine evolution. The catalyst achieves a low overpotential of 108 mV to reach a current density of 100 mA cm−2 in 4.0 M NaCl acidic medium, with excellent stability and Cl2 selectivity. This work demonstrates the potential of non-noble metal selenides as efficient and durable catalysts for chlorine production, offering a pathway toward more sustainable chlor-alkali technology.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3809-y
The development of hydrogels that simultaneously achieve high strength and good toughness remains a critical challenge in soft material science, particularly for applications in flexible electronics, soft robotics, and biomedical devices. Conventional approaches often suffer from a trade-off between mechanical robustness and functional performance. In this work, we present a novel solvent-driven dual-network entanglement strategy to fabricate a strong and tough poly(vinyl alcohol) (PVA)-based organo-hydrogel by synergistically combining isopropanol (IPA) solvent substitution to induce dense polymer chain entanglement and a sodium alginate (SA) ionic crosslinked network as a dynamic energy-dissipation phase. The resulting organo-hydrogel exhibits excellent mechanical performance with a tensile strength of 3.18 MPa and a toughness of 16.65 MJ/m3, representing increases of approximately 17 and 49 times that of conventional PVA hydrogels, respectively. Furthermore, the organo-hydrogel displays superior swelling resistance and long-term stability in aqueous environments, enabling reliable operation in challenging conditions such as underwater motion sensing and wearable strain detection. Morphological analyses reveal the critical role of solvent-mediated chain reorganization and dual-network interactions in achieving these properties. This work not only provides a versatile platform for designing robust gel materials but also offers fundamental insights into solvent-network interactions for advanced soft material engineering.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60642-1
Inherent minerals significantly influence the thermal conversion of coal, yet the interaction mechanisms among minerals affecting tar generation during pyrolysis remain unclear. This study investigates the effect of acidic mineral components on the behavior of ion-exchangeable Ca2+ during coal pyrolysis. Coal samples were prepared via HCl and HCl-HF acid washing followed by Ca2+ ion exchange. Pyrolysis was conducted in a fixed-bed reactor. Acid washing effectively reduced ash content but also decreased organic element contents (carbon, hydrogen). Loading ion-exchangeable calcium enhanced the thermal weight loss rate in the 500–550 °C range, shifting the peak temperature from 530 °C to 514 °C. At a final pyrolysis temperature of 600 °C with slow heating, kaolinite in acidic minerals underwent dehydroxylation to form metakaolin. The content of small aromatic rings (<6 rings) in char from Ca-loaded coal was lower than that from acid-washed coal without Ca. Coexistence of acidic minerals with ion-exchangeable Ca increased aliphatic hydrocarbon content in tar: YL-HCl-Ca reached 21.98% versus 13.60% for YL-De-Ca. Acidic mineral components inhibit the adverse effect of ion-exchangeable Ca2+ on tar lightening. These findings provide insights into mineral interactions during pyrolysis, aiding in optimizing coal conversion processes for improved tar quality.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60695-0
The direct carbonylation of glycerol with CO2 to glycerol carbonate represents a promising route for CO2 utilization, addressing both carbon emission reduction and the synthesis of value-added chemicals. However, the reaction is thermodynamically limited, resulting in low glycerol conversion, necessitating the use of coupling agents and appropriate catalysts. This review systematically examines recent progress in homogeneous catalysts (inorganic and organic bases) and heterogeneous catalysts (Zn, Cu, Ce, La, Mg, noble metals, modified zeolites, non-metallic materials) for this transformation. Strategies such as metal oxide modification, support optimization, precursor selection, and construction of acidic-basic sites are analyzed for enhancing catalytic performance. The effects of coupling agents including acetonitrile, adiponitrile, 2-cyanopyridine, MgCO3, CaC2, and NaHCO3 are summarized. Notably, 1,8-diazabicyclo[5.4.0]undec-7-ene (DBU), Zn(QTf)2, and metal composite oxides like ZnO-CeO2 have demonstrated promising catalytic performance. Future research directions include developing organometallic complexes or composite metal oxides with highly dispersed active sites and tailored morphologies to modulate surface area, pore size, and acidity/basicity; optimizing coupling agents or designing novel membrane reactors to improve glycerol conversion; and introducing polar solvents to enhance reactant adsorption and activation. These approaches provide valuable references for catalyst design and reaction system optimization in the carbonylation of glycerol with CO2.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026022502
This study investigates the effects of different land use types on topsoil carbon (C) and nitrogen (N) contents and their spatial distribution in the lower reaches of the Sancha River Basin, a karst region of the Yunnan-Guizhou Plateau. Grid sampling collected 0–20 cm topsoil from forestland (n=23), cultivated land (n=25), and grassland (n=32). Total C and N were measured. Results showed that topsoil C content followed grassland (40.36±22.92 g·kg−1) > forestland (37.05±12.83 g·kg−1) > cultivated land (34.06±14.57 g·kg−1), while N content followed forestland (2.89±0.76 g·kg−1) > grassland (2.67±1.19 g·kg−1) > cultivated land (2.50±0.65 g·kg−1). One-way ANOVA revealed no significant differences among land use types (P>0.05). Soil C and N were significantly positively correlated across all land uses (r>0.5, P<0.001). Coefficient of variation (CV) indicated grassland had the highest C variability (0.57), while forestland showed the most stable C and N (CV=0.35 and 0.26, respectively). Cultivated land had CVs of 0.43 for C and 0.26 for N. Spatially, forestland exhibited concentrated high C values with significant N heterogeneity; grassland had higher C in southern and eastern areas but scattered distribution, with generally low and variable N; cultivated land showed uniform but lowest C and N. Land use types significantly drive topsoil C and N dynamics through vegetation input, soil disturbance, and management practices, underscoring the importance of rational land use planning for enhancing carbon sink functions and sustainable development in karst watersheds.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025032401
Diazepam (DZP), a benzodiazepine anxiolytic drug, has been a persistent contaminant in fishery water environments. In China, DZP is classified as a veterinary drug that must not be detected in animal-derived foods, yet it is frequently found in aquatic products, posing significant risks to ecological health and food safety. This review systematically summarizes the current pollution status of DZP in fishery water and its adverse effects on aquatic organisms, emphasizing its persistence in both water and aquatic products. The paper comprehensively examines advances in detection techniques, including gas chromatography-mass spectrometry (GC-MS) and liquid chromatography-tandem mass spectrometry (LC-MS/MS), as well as treatment technologies such as adsorption, photolysis, chemical oxidation, and biodegradation. Critical gaps remain in the integration of these technologies for practical remediation. The review underscores the urgent need for enhanced monitoring and risk assessment of DZP contamination, alongside the development of more efficient and scalable treatment methods. By consolidating current knowledge, this work provides technical support for aquatic organism protection and fishery water management, and serves as a reference for future research and technological innovation in this field.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026030202
High nitrogen (N) inputs, low N use efficiency, and substantial greenhouse gas emissions constrain sustainable double-cropping rice production in the middle and lower reaches of the Yangtze River. To evaluate whether humic acid urea (HAU) can reconcile yield stability with N reduction and carbon mitigation, a field experiment was conducted in a double-cropping rice system. Five treatments were established: conventional urea at the recommended N rate (U), HAU at the recommended N rate (HAU), conventional urea with a 20% reduction in N input (U-20), HAU with a 20% reduction in N input (HAU-20), and a no-N control (CK). Rice yield, N uptake and utilization, and the full life-cycle carbon footprint were quantified. Results showed that HAU significantly increased double-cropping rice yield by 6.46% (early rice) and 8.76% (late rice) compared to U (P < 0.05). HAU-20 maintained yield equivalent to U, while U-20 significantly reduced yield. HAU-20 significantly improved nitrogen fertilizer apparent utilization rate, agronomic efficiency, and partial factor productivity. Specifically, apparent utilization rate increased by 9.24 percentage points (early rice) and 7.80 percentage points (late rice); agronomic efficiency increased by 18.51% and 26.69%, and partial factor productivity by 22.79% and 25.58% for early and late rice, respectively (P < 0.05). Life-cycle carbon footprint was significantly reduced by 26.25% (early rice) and 40.38% (late rice) under HAU-20 compared to U, with per-unit product carbon footprint reduced by 0.22 t CO2-eq·t−1 and 0.86 t CO2-eq·t−1, respectively. The reduction was primarily attributed to decreased CH4 and N2O emissions: early rice CH4 and N2O cumulative emissions decreased by 28.92% and 44.34%, and late rice by 44.46% and 63.85% (P < 0.05). In conclusion, HAU with 20% N reduction sustains yield, enhances N use efficiency, and significantly lowers carbon footprint, offering a viable path for green and low-carbon double-cropping rice production.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202607009
Resource utilization of food waste is a key measure for implementing waste classification and constructing zero-waste cities in China. However, the technical route based on anaerobic digestion currently faces developmental bottlenecks. In this study, engineering-scale facilities located in Northeast, North, Northwest, and Southeast China were selected, and material flow analysis was employed to comprehensively assess the current status of anaerobic digestion of food waste. The results indicated that, during the pretreatment stage, both leachate and organic slurry from all surveyed regions exhibited high COD/TN ratios, and the leachate contained high concentrations of lipids. Following three-phase (oil-water-solid) separation, the oil recovery rate could reach over 98%. Anaerobic digestion of each ton of food waste from the four regions generated approximately 70 to 80 Nm³ of biogas, while simultaneously producing liquid digestate accounting for 69% to 80% of the total mass and solid digestate accounting for 2.7% to 3.6%. However, the annual continuous production of digestate was not aligned with the seasonal demand for land use, thereby restricting the pathway for resource utilization. Converting food waste into an external carbon source can significantly enhance its resource utilization efficiency, with the economic benefits increasing by more than 203% compared to the methanogenesis pathway. The selection of the carbon source production technology route should be comprehensively determined by taking into account factors such as the specific nitrogen removal requirements of the target wastewater treatment process, the quality requirements for the carbon source products, and the substitution rate of commercial carbon sources.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202607010
The impact of low concentrations of perfluorooctane sulfonate (PFOS) on anaerobic fermentation of waste activated sludge (WAS) remains poorly understood. This study applied three PFOS levels (0.5, 1.0, and 4.5 μg/g TSS) to systematically evaluate effects on organic matter solubilization and nitrogen/phosphorus transformations. Monitoring of soluble chemical oxygen demand (SCOD), soluble protein, polysaccharides, NH4+-N, PO43--P, and three-dimensional excitation-emission matrix (3D-EEM) fluorescence revealed that PFOS significantly enhanced release of SCOD, protein, and polysaccharides. At 45 °C after 14 days with 4.5 μg/g TSS, SCOD peaked approximately 28% higher than control, indicating increased biodegradable organic matter accumulation. NH4+-N concentrations rose overall with fluctuations, while PO43--P release was inhibited, suggesting interference with nutrient transformation pathways. 3D-EEM analysis showed strengthened signals of aromatic proteins and microbial by-products, confirming matrix solubilization. These findings demonstrate a dual effect of low-level PFOS: initial promotion of organic matter release followed by potential inhibition of nutrient transformation. This study provides data support for understanding PFOS environmental behavior in anaerobic digestion and informs sludge resource utilization and risk assessment of emerging contaminants.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-3939-4
Broadband near-infrared (NIR) phosphors with longer wavelengths are critically needed for deep-tissue biomedical imaging and other emerging applications. However, the detailed mechanism of Mn2+-activated NIR emission remains elusive. Guided by the nephelauxetic effect theory, sulfide phosphors with strong covalent bonding are promising for achieving long-wavelength Mn2+ luminescence. This work reports a series of M(Ga, In)2S4:Mn2+ (M = Ca, Sr, Ba) phosphors featuring strong crystal field environments, and for the first time the luminescence behaviors of Mn2+-doped MIn2S4 (M = Sr, Ba). Preferential site occupancy leads to significant differences between MGa2S4:Mn2+ (M = Ca, Sr) and MIn2S4:Mn2+ (M = Sr, Ba) despite the same crystal structure. Severe polyhedral distortion enhances ultrawideband deep-red to NIR luminescence (600–850 nm, FWHM ≈ 123–257 nm), far superior to similar materials. Fabricated pc-LED devices demonstrate excellent vascular imaging and plant illumination capabilities. This study provides new insights into the NIR luminescence of isolated Mn2+.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202508006
Landfill leachate, characterized by high ammonia nitrogen, high organic load, complex toxic components, and low nitrogen removal efficiency, poses significant environmental challenges. To achieve efficient nitrogen removal, a continuous-flow two-stage anoxic/oxic (A/O) moving-bed biofilm reactor (MBBR) system coupled with anaerobic ammonium oxidation (Anammox) was constructed and operated for long-term treatment of actual landfill leachate. After biofilm attachment and multi-gradient acclimation, influent concentrations were gradually increased from low levels (NH4+-N ~200 mg·L−1, COD ~2500–3000 mg·L−1) to high levels (NH4+-N ~1800 mg·L−1, COD ~8500 mg·L−1). During stable operation, average removal efficiencies of NH4+-N and COD reached 97.7% and 66.8%, respectively, with total nitrogen (TN) removal efficiency improving to 93.9%. Along the reactor, the first A/O stage achieved major organic degradation and ammonia oxidation, while the second stage facilitated nitrite accumulation and promoted Anammox for synergistic nitrogen removal. High-throughput sequencing revealed Proteobacteria as the dominant phylum (>50%), with denitrifying genera such as Azoarcus and Thauera significantly enriched. Planctomycetota abundance increased from 0.6% to 3.7%, and Candidatus Kuenenia was detected, confirming successful Anammox colonization and participation in nitrogen removal. This study validates the efficient combined nitrogen removal mechanism of the A/O–MBBR system with Anammox, providing theoretical basis and technical support for engineering treatment of high-ammonia wastewater.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202512045
To optimize the anode structure of Ti/SnO2-based electrodes in electrochemical advanced oxidation processes (EAOPs) and enhance their electrocatalytic activity and stability, Sn-Sb co-doped Ti/SnO2 electrodes were fabricated via a sol-gel method. The degradation performance and mechanism were evaluated using phenol as a model pollutant. Three electrodes were prepared with different Sn/Sb molar ratios: Ti/SnO2 (10:0), Ti/Sb (0:10), and Ti/SnO2-Sb (9:1). Characterization by XRD, SEM, and electrochemical tests revealed that the Sn-Sb co-doped electrode exhibited a dense surface, higher oxygen evolution potential (OEP), larger electrochemically active surface area, and lower charge transfer resistance compared to single-doped counterparts. In constant-current electrolysis experiments (20 mA·cm−2, pH=5, 0.1 mol·L−1 Na2SO4), the co-doped electrode achieved superior phenol and TOC removal efficiencies and higher apparent rate constants, with the lowest specific energy consumption per unit TOC removal. Radical quenching and intermediate analysis indicated that hydroxyl radicals (·OH) were the dominant reactive species. The degradation pathway involved aromatic ring hydroxylation, ring opening, and further mineralization of short-chain carboxylic acids. Sn-Sb co-doping enhanced the generation of ·OH by increasing surface adsorbed oxygen and defect site density. This synergistic doping strategy significantly improved the electrocatalytic activity and service life of Ti/SnO2-based anodes, providing a basis for the rational design of anode materials for EAOPs in treating refractory organic wastewater.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202509120
The 'Zero-Waste City' initiative, centered on source reduction, resource utilization, and safe disposal of solid waste, aims to minimize environmental impact. To quantitatively assess its carbon reduction contribution, this study took Mianyang as a case, systematically collecting data on solid waste generation, utilization, and disposal across industrial, agricultural, and other sectors from 2021 to 2024. Employing an improved WARM model and emission factor method, and incorporating generation, utilization, and disposal intensities, the carbon reduction benefits before (2021–2022) and after (2023–2024) the initiative were evaluated. Results show that despite significant improvements in comprehensive utilization and safe disposal rates, total solid waste generation increased, leading to a net negative carbon effect of -127.6×10^4 tCO2eq based on absolute quantities. However, after stripping economic and population growth factors, intensity-based accounting revealed a cumulative reduction of 10.8×10^4 tCO2eq, demonstrating significant synergistic benefits. The industrial sector contributed the most, with a reduction of 40.2×10^4 tCO2eq, driven by green transformation and enhanced utilization capacity. Conversely, the rising intensity of domestic solid waste generation resulted in a negative benefit of -46.1×10^4 tCO2eq, highlighting a key area for future improvement. The study underscores the necessity of considering both intensity and absolute quantity dimensions in evaluating rapidly developing cities. These findings provide practical evidence and reference pathways for advancing 'Zero-Waste City' construction and synergistic pollution reduction and carbon mitigation under the 'dual carbon' goals.
Chinese Journal of Environmental Engineering•2026•DOI: 10.12030/j.cjee.202511011
The high cost of catalysts is a critical barrier to the upgrading and cost reduction of catalytic ozonation technology. This study developed a low-cost, long-life Fe–Mn-based ozone catalyst (FMG) derived from solid wastes (red mud and blast-furnace slag), leveraging iron and manganese components to construct dual active centers. A continuous manufacturing process was achieved by integrating alkali-activated cementitious reactions with disc pelletization via a cascade spray-coating and multi-stage curing technique. Under optimal conditions (ozone dosage 3.5 mg·L−1), the catalyst achieved 81.81% total organic carbon (TOC) removal of phenol solution within 60 min, retaining 87.27% of its initial activity after 15 reuse cycles. Long-term continuous-flow tests over 60 days demonstrated stable TOC removal between 69.44% and 75.46%. The production cost of FMG was 1,351.44 CNY·t−1, and the unit TOC removal cost was only 0.06 CNY·(g TOC)−1, representing a 78.69%–86.85% reduction compared to commercial catalysts (0.30–0.48 CNY·(g TOC)−1). This work provides a theoretical and technical foundation for cost-effective catalytic ozonation and high-value conversion of bulk solid wastes.
Journal of Fuel Chemistry and Technology•2026•DOI: 10.1016/S1872-5813(26)60658-5
Sulfur dioxide emitted from combustion of sulfur-containing aromatic compounds in fuels is a major contributor to atmospheric pollution. Oxidative desulfurization (ODS) has become a crucial complement to hydrodesulfurization (HDS) due to its mild reaction conditions and high efficiency in removing refractory aromatic sulfides. Metal doping is an effective strategy to modulate the electronic structure of catalysts and enhance catalytic performance. In this study, Mn-doped Co-V-O metal oxide (Mn-Co-V-O) was synthesized via a reflux method followed by high-temperature calcination. The structure, morphology, and surface chemical composition were characterized by FT-IR, XRD, SEM, XPS, and UV-vis DRS. The ODS performance toward dibenzothiophene (DBT) was evaluated using molecular oxygen as a green oxidant. Results indicated that Mn doping significantly enhanced the ODS activity compared to undoped Co-V-O. Under optimized conditions (110 °C, 0.03 g catalyst, 150 mL/min O2 flow, 20 mL model oil), a direct DBT removal rate of 81.6% was achieved. When combined with extraction, the desulfurization rate increased to 98.0%. Mechanistic studies revealed that Mn doping increased the surface oxygen vacancy concentration, facilitating oxygen activation to generate superoxide radicals (·O2−). Radical trapping experiments confirmed that ·O2− was the key active species responsible for selective oxidation of DBT to DBTO2. This study provides a reference for designing efficient metal oxide catalysts for deep oxidative desulfurization.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026021203
Neonicotinoid insecticides (NEOs) are widely used pesticides with residues entering the human body via multiple routes, posing potential health risks. Pregnant women are a sensitive population requiring investigation into NEO exposure effects. Based on the Jiashan Birth Cohort, this study measured 12 NEOs (9 parent compounds and 3 metabolites) and three oxidative stress biomarkers (8-iso-prostaglandin F2α, 8-iso-15(R)-prostaglandin F2α, and 8-hydroxy-deoxyguanosine) in urine from 917 pregnant women using liquid chromatography-triple quadrupole mass spectrometry. Demographic data were integrated to analyze exposure patterns and associations. Results showed at least one NEO detected in all samples; seven NEOs had detection rates >50%. Median creatinine-adjusted total concentration was 5.613 μg·g−1. Acetamiprid-N-desmethyl (N-dm-ACE) had the highest detection rate (98.59%) and largest concentration proportion (64.2%). Spearman correlation, multiple linear regression, and Bayesian kernel machine regression revealed positive associations between oxidative stress markers and NEO exposure. Specifically, 8-PGF and 15-PGF correlated positively with thiacloprid-amide (THI-amid) and dinotefuran (DIN); 8-OHdG correlated positively with thiamethoxam (THM) and sulfoxaflor (SFX). Health risk assessment indicated hazard quotients below 1 for all NEOs, suggesting low health risks. This study provides evidence linking NEO exposure to oxidative stress damage in pregnant women, informing risk assessment for sensitive populations.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025041409
High-entropy alloys (HEAs) have emerged as promising catalytic materials for organic wastewater treatment owing to their unique catalytic activity, structural stability, and corrosion resistance. This review systematically elaborates the physicochemical properties of HEAs and their multi-path degradation mechanisms, with emphasis on Fenton reactions, photocatalysis, and tribocatalysis. The influence of mainstream preparation techniques—mechanical alloying, arc melting, gas atomization, and impregnation adsorption—on catalytic performance is critically compared. To overcome practical bottlenecks such as low powder recovery and rapid active-site deactivation, synergistic optimization strategies including metal doping, morphological modification, and composite engineering are proposed. The review identifies key challenges in enhancing degradation efficiency, scaling up production, and designing composite materials, and outlines future research directions for HEAs in wastewater treatment. This work provides a theoretical foundation for developing efficient and stable HEA-based environmental catalysts.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025051404
Rubber additives, such as 1,3-diphenylguanidine (DPG) and p-phenylenediamine antioxidants (PPDs), are widely used in the rubber industry and have been increasingly detected in aquatic environments. This study investigated the distribution characteristics and potential sources of seven typical rubber additives (DPG, 6PPD, IPPD, DPPD, CPPD, DNPD, and 77PD) and the transformation product 6PPD-Q in surface water of the Guangzhou section of the Pearl River, China. A total of 29 sampling sites were analyzed. Total concentrations of the target compounds ranged from 205 to 5400 ng·L−1, with a mean of (820±1100) ng·L−1. DPG was the dominant compound in both dissolved and particle phases, accounting for (99±1.9)% and (66±13)% of the total concentrations, respectively. Source analysis indicated that aquaculture, vessel navigation, agricultural runoff, and wastewater treatment plant discharges likely influence the occurrence of rubber additives in this river section. Risk quotient (RQ) assessment revealed that 6PPD-Q posed high ecological risk at all sampling sites (RQ > 1), while DPG exhibited moderate to high risk at most sites (RQ > 0.1). In contrast, 6PPD, IPPD, CPPD, and DPPD showed low ecological risk. These findings highlight the need for heightened attention to the ecological risks posed by 6PPD-Q and DPG in the Pearl River Basin and provide scientific data for pollution prevention and risk management.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2025041505
To combat severe air pollution, China has implemented a series of air pollution control action plans since 2013, effectively alleviating PM2.5 pollution. However, PM2.5 concentrations in most cities within the Fenwei Plain still exceed national standards. This study systematically evaluates PM2.5 concentration changes across two policy phases (2013–2020) using the Community Multiscale Air Quality (CMAQ) model, quantifying contributions of meteorology and emissions, and analyzing sectoral source changes. Results show that annual average PM2.5 concentration declined cumulatively by 19% during 2013–2020. In the first phase (2013–2017), regional PM2.5 decreased by 3% annually, with most improvement in winter; however, due to unfavorable meteorology, concentrations increased in Xi'an and Xianyang. In the second phase (2017–2020), PM2.5 declined by an additional 16%, with more effective control measures, particularly in spring and autumn. Emission reductions dominated in both phases, with stronger effects in the second phase (−8 μg·m−3), significantly outweighing adverse meteorological contributions (+3.5 μg·m−3). Nevertheless, many cities still face challenges from unfavorable meteorology, highlighting the need for future policies to account for meteorological influences. Emissions from industrial, energy, and agricultural sources decreased significantly across both phases. However, during winter heating periods, residential emissions emerged as a source equal in importance to industrial emissions, becoming a key target for future emission controls.
Journal of Environmental Engineering Technology•2026•DOI: 10.13205/j.hjgc.202608003
The transition of municipal wastewater treatment from energy-intensive aerobic processes to energy-recovering anaerobic technologies is critical for achieving carbon neutrality. However, anaerobic treatment of low-strength wastewater faces operational challenges, especially after prolonged shutdowns and under low-temperature stress. This study investigated the recovery and performance of a pilot-scale anaerobic filter (AF) packed with volcanic rock media (effective volume 240 L) treating actual municipal wastewater. After a 234-day starvation period, the AF recovered within 63 days by extending hydraulic retention time from 8 to 12 hours, achieving total chemical oxygen demand (TCOD) and soluble chemical oxygen demand (SCOD) removal amounts of 58.6 mg/L and 21.5 mg/L, respectively. Following 100 days of low-temperature operation (influent temperature dropped to 11.7 °C), TCOD and SCOD removal amounts remained at 54.6 mg/L and 28.6 mg/L, respectively. Although methane production volume decreased, the specific methane yield was not significantly affected (0.276 L CH4/g TCODre during recovery vs. 0.244 L CH4/g TCODre under low temperature). Mechanistic analysis revealed that increased protein secretion in extracellular polymeric substances (EPS) was crucial for resistance to low-temperature stress, with protein content negatively correlated with temperature. Microbial community analysis showed that functional populations recovered in the order of hydrolytic acidogens, hydrogen-producing acetogens, and methanogens. Methanobacterium dominated after starvation, while Methanosaeta became dominant after low-temperature exposure due to its high affinity for acetate. Carbon footprint accounting indicated that recovering dissolved methane and coupling with nitrate-dependent methane oxidation is the optimal strategy for carbon reduction.
Environmental Chemistry•2026•DOI: 10.7524/j.issn.0254-6108.2026022402
Graphene oxide–silver nanoparticle (GO-AgNPs) nanocomposites synergistically combine the high specific surface area and biocompatibility of graphene oxide with the potent antibacterial and optical properties of silver nanoparticles. This review systematically examines current synthetic strategies—physical, chemical, and biological—and their influence on nanocomposite morphology, loading efficiency, and stability. The biomedical applications of GO-AgNPs are critically analyzed, focusing on antimicrobial activity, anticancer therapy, drug delivery, and biosensing. Mechanistic insights reveal that antimicrobial action involves membrane disruption, oxidative stress, and damage to biomolecules, while anticancer effects are mediated through reactive oxygen species (ROS) generation. The review also addresses challenges such as AgNP aggregation and stability, which are mitigated by GO support. Future directions emphasize the development of multifunctional nanomedicine platforms, with a need for standardized toxicity assessments and scalable synthesis. This comprehensive overview aims to guide further research and clinical translation of GO-AgNPs.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4065-6
Industrial-scale hydrogen production from seawater is a paramount goal for a sustainable energy future, yet it is severely hampered by the rapid deactivation of electrocatalysts under harsh operating conditions. Here, we introduce a robust self-supporting aerogel catalyst designed to address the two intertwined challenges of activity and stability in high-current-density seawater electrolysis. Our strategy involves creating strong metal-support interactions by anchoring ultrasmall platinum nanoparticles onto a porous N-doped carbon aerogel (Pt@N/CFP). Theoretical calculations reveal that this unique Pt-N interface serves a dual critical function: it not only lowers the kinetic barrier for water dissociation but also creates an electronic shield that effectively prevents chloride ion poisoning of the Pt active sites. When implemented as the cathode in a practical anion-exchange membrane (AEM) electrolyzer, the Pt@N/CFP catalyst demonstrates exceptional performance, achieving a low cell voltage of 1.688 V at an industrial-grade current density of 1000 mA cm−2 and maintaining outstanding stability for over 300 h. This work provides guidance for creating exceptionally durable catalysts capable of withstanding extreme electrochemical environments.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4021-5
Lead-free halide double perovskites have attracted significant attention owing to their eco-friendliness, structural tunability, and self-trapped exciton emission. Nevertheless, achieving efficient and stable near-infrared-II (NIR-II) luminescence, especially in materials incorporating lanthanide ions, remains a considerable challenge in photonics research. Herein, we report a notable advance in the design and synthesis of Sb3+-sensitized Cs2NaLuCl6:Er3+ double perovskite single crystals, which exhibit an unprecedented external quantum efficiency of 45.3% for emission at 1542 nm. Sb3+ acts as a broadband ultraviolet absorber and transfers energy to Er3+ via self-trapped exciton emission. Moreover, at high concentrations of Er3+, Er3+-Er3+ cross relaxation (2H11/2 + 4I15/2 → 4I9/2 + 4I13/2) selectively populates the NIR-emitting 4I13/2 state, suppressing competitive visible emission pathways. This synergistic host-sensitizer-activator design strategy, supported by density functional theory calculations, addresses long-standing efficiency limitations and opens new avenues for high-performance NIR-II emitters in bioimaging, night vision, and optical communications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4124-x
Aerogel fibers, featuring distinct porous architecture and fiber flexibility, have emerged as leading materials for personal thermal protection; however, complex drying processes and singular thermal insulation mechanisms limit their use in complex environments. Here, aramid nanofiber/carbon nanotube (ANF/CNT) aerogel fibers integrating passive thermal insulation and active solar heating were fabricated via wet-spinning and ambient-pressure drying (APD). The incorporation of CNT and Ca2+ generates abundant physical and chemical crosslinking points, strengthening the nanofiber network skeleton and reducing structural collapse during APD to only 8.9% shrinkage. The resulting ANF/CNT aerogel textiles exhibit low thermal conductivity of 33.8–40.4 mW/(m K) and thermal insulation capability from −196 to 400 °C. The photothermal effect of CNT enables active solar heating, effectively supplementing passive insulation and allowing survival in extremely cold environments. In real tests, the synergistic effect improved skin temperature by up to 5.9 °C, significantly higher than 1.6 °C from passive insulation alone. These ANF/CNT aerogel fibers combine flexibility, mechanical strength, and flame retardancy, demonstrating promising potential for smart, controllable personal thermal management applications.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4017-y
Lattice distortion via entropy engineering can significantly optimize thermoelectric performance by intensifying phonon scattering. However, excessive lattice distortion in high-entropy materials inevitably hinders carrier transport, limiting the wide-temperature average ZT (ZTave). To enhance the wide-temperature thermoelectric performance of low-cost PbS-based compounds, this work introduces moderate lattice distortion by controlling entropy around 1.0R (R is the gas constant) to balance phonon and carrier transport, alleviating restrictions on carrier mobility. Substantial Se and Te alloying in PbS induces rock-salt lattice distortion, effectively impeding phonon propagation, thus suppressing lattice thermal conductivity (κlat) from 2.41 W m−1 K−1 in PbS to 0.66 W m−1 K−1 in PbS0.5Se0.35Te0.15 at 300 K. Additionally, Cu interstitials are introduced into the lattice-distorted PbS0.5Se0.35Te0.15 to further optimize carrier density and weighted carrier mobility (μW), leading to significant improvement in μW/κlat parameter at 300–773 K. Finally, a room-temperature ZT of 0.53 and a maximum ZT of 1.44 are obtained in PbS0.5Se0.35Te0.15-1%Cu sample, contributing to an impressive ZTave of 1.08 at 300–773 K and a maximum power generation efficiency (ηmax) of 7.5%. The results outperform previously reported cost-effective PbS-based compounds and highlight the importance of lattice distortion regulation in enhancing wide-temperature thermoelectric performance.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-025-4056-1
Nanoparticle-based therapeutics have been intensively explored for tumor treatment. However, developing convenient and specific strategies that do not rely on exogenous energy-guided activation remains challenging. Herein, an ion-exchange-driven chemodynamic therapy is proposed based on the TME K+-mediated cation exchangeability of layered ferrous silicates (LFSs). LFSs were prepared by a facile "in situ 3D-to-2D structural transformation" strategy through valence bond transition from SiO–H–OSi to Fe–O, providing extensive convenience compared to conventional exfoliation methods. The structure-activity relationship and mechanism between surrounding TME ions and the cation exchange behavior of LFSs were revealed by both experimental investigation of the cation-exchange process and DFT calculations of the adsorption hydration behavior. As a result, the interlayered Fe ions were selectively and preferentially exchanged by TME K+ rather than surrounding TME Na+, Mg2+, Ca2+, or Cl−, thereafter activating specific Fenton reaction together with TME H+, H2O2, and glutathione, demonstrating highly precise catalytic therapeutic efficacy both in vitro and in vivo. This study proposes an original tumor-specific therapy modality with high precision and safety through taking advantage of ionic exchangeability of layered silicate, and provides enlightenment to reverse the TME K+ disorder.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4040-0
High-performance organic second-order nonlinear optical (NLO) crystals face a persistent challenge: molecular designs that enhance hyperpolarizability often crystallize into centrosymmetric or nonpolar arrangements, suppressing bulk second-order response, while simultaneously reducing optical bandgaps, enforcing a trade-off between nonlinearity and transparency. We report a chirality-driven polar lattice engineering strategy that couples molecular asymmetry with directional intermolecular interactions to promote polar ordering. A binaphthyl-based chromophore (S-3) crystallizes in the polar space group P2₁, exhibiting strong second-harmonic generation (~3.53 × KDP), wide transparency (3.91 eV), phase-matchable birefringence (Δn = 0.15), high laser damage threshold (742.6 MW cm⁻²), and thermal stability up to 210 °C. Theoretical calculations reveal a 69% enhancement in first-order hyperpolarizability (β_tot) relative to the unfunctionalized derivative, with a net intramolecular electron transfer of 0.16 e⁻ from the chiral scaffold to the benzoate acceptor. Crucially, enantiomeric crystals exhibit identical NLO responses, confirming that bulk nonlinearity is governed by engineered lattice polarity, not molecular handedness. This work establishes chirality as an active tool for crystal engineering and provides a general design paradigm for high-performance organic NLO materials.
SCIENCE CHINA Materials•2026•DOI: 10.1007/s40843-026-4072-3
All-inorganic, hole-transport-material-free (HTM-free), carbon-based perovskite solar cells (C-PSCs) have attracted significant attention due to their exceptional stability and low cost. However, their performance and commercial potential are constrained by poor interfacial contact, insufficient crystallinity, and energy level misalignment. In this work, we address these challenges via a molecular engineering strategy by introducing tetrakis(4-ethynylphenyl)methane (TEPM) as a multifunctional additive. The alkynyl moiety (C≡C) in TEPM coordinates with Pb2+ ions in perovskite precursors, synergistically slowing crystallization kinetics to regulate crystal growth and passivate deep-level defects. Consequently, CsPbI3 films exhibit larger grain sizes, improved crystallinity, and lower defect densities. Devices modified with TEPM achieved a record power conversion efficiency (PCE) of 20.01% (certified 19.58%). Additionally, unencapsulated devices retained 87.6% of their initial efficiency after 1080 h under ambient conditions (25 °C, 30% relative humidity), and maintained 94.0% of their initial efficiency after 730 h of continuous AM 1.5G illumination in air. This work sets a new efficiency benchmark for inorganic HTM-free C-PSCs and provides a versatile molecular engineering strategy for developing high-performance, stable perovskite photovoltaics.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3631-1
Anion exchange membrane water electrolysis (AEMWE) offers cost and dynamic-response advantages over proton exchange membrane systems, yet commercial deployment is constrained by the alkaline stability of anion exchange membranes (AEMs) and the sluggish kinetics of non-precious metal catalysts. This work reports a series of poly(terphenyl-diphenylmethane piperidinium) (QPDPMTP) membranes synthesized with varied diphenylmethane (DPM) content. The alkyl chain of DPM induces pronounced microphase separation and elevates free volume fraction, yielding an OH− conductivity of 152 mS cm−1 at 80 °C for QPDPMTP-10. After 1032 h immersion in 6 M NaOH at 80 °C, the membrane retains 90.7% of its initial conductivity. An AEMWE cell integrating QPDPMTP-10 with a non-precious NiFeCo LDH/NiS/NF anode achieves 3.11 A cm−2 at 2 V in 1 M KOH at 80 °C and sustains 1 A cm−2 for 1800 h under gradient KOH concentration. These results establish a viable pathway for durable, low-cost AEMWE systems.
SCIENCE CHINA Materials•2025•DOI: 10.1007/s40843-025-3548-9
Photodynamic therapy (PDT) is constrained by the absence of tumor selectivity in conventional photosensitizers (PSs), which produces phototoxicity in normal tissues and risks activation by ambient light. Covalent conjugation of PSs to targeting peptides improves accumulation but does not suppress off-target activation. This work reports B-HCPP-RGD, a single-molecule PS that integrates αVβ3 integrin targeting with dual responsiveness to H2O2 and cathepsin B. The hypocrellin-derived type I PS HCEA is masked by a 4-(bromomethyl)phenylboronic acid pinacol ester H2O2-responsive group and conjugated to cyclic Arg-Gly-Asp (cRGD) through a cathepsin B-cleavable Gln-Val dipeptide linker. ROS generation in solution is effectively suppressed until both H2O2 and cathepsin B are present, at which point HCEA is released. In vitro, B-HCPP-RGD shows negligible phototoxicity toward normal cells and pronounced phototoxicity toward tumor cells, including under hypoxic conditions. In vivo, the conjugate actively targets tumor tissue and achieves a high tumor inhibition rate with favorable biosafety. The results establish a modular design for dual-responsive, tumor-targeted PSs that improves the precision and safety of PDT.